EP3533308A1 - Dispositif d'échantillonnage pour cultiver et échantillonner des plantules de plantes - Google Patents

Dispositif d'échantillonnage pour cultiver et échantillonner des plantules de plantes Download PDF

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Publication number
EP3533308A1
EP3533308A1 EP18159836.8A EP18159836A EP3533308A1 EP 3533308 A1 EP3533308 A1 EP 3533308A1 EP 18159836 A EP18159836 A EP 18159836A EP 3533308 A1 EP3533308 A1 EP 3533308A1
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EP
European Patent Office
Prior art keywords
seedlings
passages
cutting board
cutting
sampling device
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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Application number
EP18159836.8A
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German (de)
English (en)
Inventor
Joachim Strauss
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
KWS SAAT SE and Co KGaA
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KWS SAAT SE and Co KGaA
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First worldwide family litigation filed litigation Critical https://patents.darts-ip.com/?family=61563230&utm_source=google_patent&utm_medium=platform_link&utm_campaign=public_patent_search&patent=EP3533308(A1) "Global patent litigation dataset” by Darts-ip is licensed under a Creative Commons Attribution 4.0 International License.
Application filed by KWS SAAT SE and Co KGaA filed Critical KWS SAAT SE and Co KGaA
Priority to EP18159836.8A priority Critical patent/EP3533308A1/fr
Priority to DK19160405.7T priority patent/DK3533309T3/da
Priority to EP19160405.7A priority patent/EP3533309B1/fr
Publication of EP3533308A1 publication Critical patent/EP3533308A1/fr
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    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01CPLANTING; SOWING; FERTILISING
    • A01C1/00Apparatus, or methods of use thereof, for testing or treating seed, roots, or the like, prior to sowing or planting
    • A01C1/02Germinating apparatus; Determining germination capacity of seeds or the like
    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01CPLANTING; SOWING; FERTILISING
    • A01C7/00Sowing
    • A01C7/04Single-grain seeders with or without suction devices
    • A01C7/042Single-grain seeders with or without suction devices using pneumatic means
    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01GHORTICULTURE; CULTIVATION OF VEGETABLES, FLOWERS, RICE, FRUIT, VINES, HOPS OR SEAWEED; FORESTRY; WATERING
    • A01G7/00Botany in general
    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01GHORTICULTURE; CULTIVATION OF VEGETABLES, FLOWERS, RICE, FRUIT, VINES, HOPS OR SEAWEED; FORESTRY; WATERING
    • A01G9/00Cultivation in receptacles, forcing-frames or greenhouses; Edging for beds, lawn or the like
    • A01G9/02Receptacles, e.g. flower-pots or boxes; Glasses for cultivating flowers
    • A01G9/029Receptacles for seedlings
    • A01G9/0295Units comprising two or more connected receptacles

Definitions

  • the invention relates to a sampling device for donning and sampling of seedlings and plants with a foot part, and a cutting device for dicing seedlings above the root, preferably in the region of the shoot, particularly preferably in the region of the hypocotyl. Furthermore, the invention relates to a method for donning and sampling of seedlings with a sampling device of the type mentioned, and a use of a sampling device of the type mentioned.
  • Sampling devices of the above type are used to attract seedlings of plants and then sampled. In this way, seeds, especially seeds, can be tested to analyze, for example, certain agronomic, physiological, genetic, phenotypic or morphological features.
  • a clean separation of the seedlings is important, also to keep components with maternal DNA from the sample. In particular, it is important that the pericarp does not enter the sample to prevent contamination of the sample.
  • DE 10 2013 100 261 A1 For example, a system for harvesting biological samples is known.
  • the system includes upper and lower multiwell plates stacked on top of each other. The seed is placed in the lower multiwell plate and the seedling then grows into the upper multiwell plate. To prevent contamination, the upper multiwell plate extends partially into the bottom multiwell plate. So it is necessary to separate the seedlings that the upper multiwell plate is raised to form a gap between the upper and lower multiwell plate. In this case, the individual seedlings can be easily damaged and also a "Veriety" of a seedling in a tube of the upper multiwell plate, which is intended for another seedling possible. Furthermore, in the system shown DE 10 2013 100 261 A1 the nutrient supply of the seedlings consuming, since these must be made separately in the individual tubes of the lower multiwell plate.
  • WO 2012/096 568 A1 Another system is off WO 2012/096 568 A1 known.
  • a sampling device comprising a support plate having a plurality of plants arranged in a grid. Above the plants several discs are arranged, which have mutually aligned openings. To separate the individual seedlings then either one of these discs can be pulled out, or between the discs are knives carried out.
  • pericarp is not stripped, and also assigning separate seedlings to individual vessels, such as tubes, is not readily possible.
  • the system disclosed therein works well for bulk sampling, which does not require a single analysis of a single seedling.
  • Object of the present invention is to provide a sampling device of the type mentioned, with a simple and reliable sampling and a homogeneous tightening of the seedlings is possible, preferably without a permanent care is necessary. It should be ensured as possible that side growth of seedlings is not possible and a sample contamination is largely prevented.
  • the invention solves the problem in a sampling device of the type mentioned in that the cutting device has a cutting board base and a cutting board upper part arranged on the cutting board upper part, which are slidable against each other for dicing the seedlings or between which a cutting edge for dicing Seedlings is inserted, wherein the cutting board base has a first plurality of passages and the cutting board upper part a second plurality of passages, and the first plurality of passages are aligned with the second plurality of passages, wherein the passages of the first plurality of passages in the cutting board base, tapering towards the cutting board upper, and the cutting board upper on at least one of the passages of the second plurality of passages, at least one positioning member for positioning receptacles for receiving the severed shoots or sprouts of the keys imlinge.
  • the cutting board base and the cutting board upper part are firmly connected or formed as a one-piece element, wherein for cutting the seedlings between the cutting board base and cutting board top a cutting edge is inserted.
  • the cutting board base serves on the one hand to separate the individual seedlings safely from each other, so that a growth of seedlings can be prevented.
  • the passages of the first plurality of passages are preferably formed so that they taper towards the cutting board upper part.
  • a leadership of the seedlings takes place.
  • a narrowing of the rung is to be achieved by the rejuvenation during waxing, whereby the Perikarp, which adheres to the sprouts, can be stripped. It is crucial that the pericarp be stripped below the cutting edge, ie in the area of the foot or cutting board base.
  • the cutting board top has passages of a second plurality of passages aligned with the passages of the first plurality of passages.
  • the passages of the first plurality of passages are aligned with the passages of the second plurality of passages.
  • a positioning member is arranged to align a receptacle for receiving the separated shoots or sprouts of the seedlings. It may be provided that a positioning element is arranged on each of the passages of the second plurality of passages, or of a subset, for example, on every second of the passages of the second plurality of passages.
  • the sprout is understood as meaning the part of the corm that consists of shoot axis and leaves, usually above ground.
  • Hypocotyl is understood herein to mean the lowermost portion of the shoot axis of a seed plant from the root neck to the cotyledons.
  • the sampling device is designed so that the cutting board lower part and the cutting board upper part are displaceable relative to each other for severing the seedlings, it can be provided that a separating element can be inserted between them in order to prevent contamination.
  • the separating element can in principle be designed similar to the cutting edge. This variant is particularly suitable for seedlings that have no particularly hard stem axis.
  • the sampling device comprises a germ carrier for seed or seedlings, which is arranged between the foot part and the cutting device and is formed from an absorbent material for storing liquid.
  • the germ carrier preferably has a third plurality of wells, with central axes of the third plurality of wells aligned with the first plurality of passages.
  • the depressions are preferably adapted to receive seeds or seedlings.
  • the wells are arranged in a 24 well, 48 well, 96 well, 192 well, or 384 well format. The selection of the appropriate format depends on the size of the seeds to be interpreted and / or the number of seedlings to be sampled and can be selected according to the application.
  • the germ carrier has about 1 to 400 wells.
  • the individual wells are preferably separated from each other.
  • the germ carrier is designed so that lateral coalescence of seedlings is prevented.
  • the recesses in the germ carrier are preferably formed so that the seedlings can only grow straight up into the corresponding passage of the first plurality of passages in the cutting board base. This makes it possible to ensure that a seedling from a depression of the germ carrier can not grow into an adjacent passage of the first plurality of passages. This can ensure that the individual samples do not contaminate each other.
  • the germ carrier comprises or is formed from waste paper material.
  • Waste paper material is particularly suitable because it is preferred on the one hand for environmental reasons, on the other hand, the material is absorbent.
  • the waste paper material can also be replaced by another absorbent material.
  • the material of the germ carrier may have a thickness of 0.5 mm to 5 mm, preferably 1 mm to 2 mm, particularly preferably 1.2 mm to 1.5 mm.
  • a density in the range of 0.2 g / cm 3 to 0.7 g / cm 3 has been found.
  • the density is particularly preferably in the range from 0.3 g / cm 3 to 0.4 g / cm 3 .
  • the absorbency of the material of the germ carrier should be selected so that it is watered when sowing and until the sampling of the seedlings stores enough liquid or provides the growing seedlings.
  • a typical timeframe is between one and ten days for sampling, for example for Beta sp. Seedlings, especially Beta vulgaris, at about five to seven days, or for Brassica sp. Seedlings, especially Brassica napus, at about 4-5 days.
  • the receptacles are designed as unilaterally open laboratory tubes (Tubes) and held in a holder (rack) with its opening proximal to the cutting board upper part.
  • the receiving containers are preferably dimensioned such that the seedlings can grow in, without being against the underside of the receptacle for a long time, for example more than one day. This would clearly favor a possible fungal attack. In addition, this also prevents the sampled shoots or sprouts later protrude from the receptacles, which significantly facilitates a closure, as this protruding shoots or sprouts are not detected or squeezed by the closure.
  • a particularly preferred tube rack is FluidX from Brooks Life Science Systems, United Kingdom. Also possible are Deepwell boxes, which have no Einzeltubes. In this way, the seedlings can grow directly into the tubes. In general, the tubes are placed with their opening down on the cutting board upper part, so that the seedlings grow from below into the opening of the tube.
  • the cutting device has a guide for the cutting edge or a guide for moving the cutting board upper part to the cutting board lower part.
  • the cutting edge is preferably formed as a knife, or as another element which is suitable for dicing seedlings.
  • the guide serves to guide the cutting edge or the cutting board upper part during the cutting process, so that the individual seedlings can be safely separated.
  • the guide is formed on the cutting board base. In this way it can be ensured that the cutting edge or the cutting board upper part is held close to the cutting board lower part and that no root material or pericarp gets into the receiving containers.
  • a gap is preferably provided between them, for example by means of corresponding spacers.
  • the gap between the cutting board lower part and the cutting board upper part preferably has a gap width of 0.2 to 2 mm, particularly preferably 0.5 mm to 1 mm. As appropriate, a gap width of about 0.7 mm has been found. Through this gap, aeration of the seedlings is possible to prevent fungal infection.
  • the cutting board base and cutting board top are without any apparent gap during the tightening of the seedlings on each other. Only when the sampling device for performing the cutting operation is rotated by 180 °, a gap between the cutting board base and cutting board shell is formed in a predetermined width, which is determined for example by the above-mentioned guide.
  • the cutting edge is dimensioned such that each passage of the first plurality of passages can be completely covered at least once when the cutting edge is inserted.
  • the cutting edge can be advanced step by step in this embodiment, and as soon as, for example, a seedling or a series of seedlings is severed, the advance of the cutting edge is stopped and the sampling device is rotated so that the separated shoots or sprout parts enter the receiving container. The sampling device is then turned over again and the cutting edge advanced one step further. Alternatively, the sampling device is not rotated, but the receptacle is removed gradually.
  • the cutting edge obscures the passages of the first plurality of passages in the cutting board base and prevents, as the sampling device is rotated, root material or pericarp from falling through the corresponding passage into the receptacle. This will further ensure that contamination is prevented.
  • the cutting edge has such a dimension that in an inserted state, the first plurality of passages is completely coverable.
  • the cutting edge covers all the passages of the first plurality of passages, so that in a first step the cutting edge can be inserted for dicing all the seedlings and then the sampling device is rotated, so that all separated shoots or sprout parts fall into the corresponding receiving container, while the Passages of the first plurality of passages are covered to prevent contamination by the cutting edge.
  • the cutting board top is displaced from the cutting board base, such that when displaced, the first plurality of passages are completely concealable by impermeable portions of the cutting board top located between the second plurality of passages.
  • the cutting board upper part covers in this embodiment all the passages of the first plurality of passages, so that in a first step, all seedlings can be cut by moving and then the sampling device is rotated so that all separated shoots or sprouts fall into the corresponding receptacle, while the passages the first plurality of passages are covered to prevent contamination by the cutting board top.
  • the passages of the first plurality of passages have a cross-section with a clearance that is selected so that the pericarp or portions thereof can be stripped from the seedlings.
  • the shoots When raising the seedlings, the shoots usually carry pericarp or parts of it, which can fall off only by progressive growth by growing leaves. In seedlings, however, the pericarp or parts thereof are usually still attached to the leaves of the shoot, and would thus pass from the germ carrier through the cutting board base and the cutting board top into the receptacle.
  • the passages of the first plurality of passages therefore preferably have such a clear width, which is narrow enough to strip pericarp from the seedlings.
  • the pericarp carries only maternal DNA.
  • the clear width which is sufficient for stripping Perikarp, depends on the plant genus or plant species. As a suitable inside width, a clear width in the range of 1 mm to 6 mm has been found. This is sufficient for most plant species and plant species. For example, one has clear width of 3 mm for seedlings of the Beta sp., in particular the Beta vulgaris, as sufficient and optimally exposed to achieve a safe stripping of Perikarp.
  • the positioning elements are designed as an annular collar around the respective passages of the cutting board upper part.
  • the collar preferably extends away from the cutting board lower part facing side, so that the collar is suitable as a receptacle for a corresponding receptacle, in particular laboratory tube.
  • the collar does not have to completely surround the respective passage, although this is preferred in order to avoid contamination.
  • the collar tapers towards the free end. As a result, an easier assembly can be made possible.
  • the collar and the corresponding laboratory tube overlap in the axial direction to prevent ingrowth of a seedling into an adjacent laboratory tube.
  • the positioning elements have spacers for spacing the receptacle from the cutting board upper part.
  • This gap is used in particular for the ventilation of the seedlings, so that they are supplied with sufficient air. This avoids, among other things, fungal infestation.
  • a distance of 0.1-5 mm, preferably from 0.5 to 2 mm and more preferably from 0.7 to 1 mm has been found to be sufficient. Even a greater distance can be provided, but increases with a greater distance and the risk of contamination.
  • the spacer of a positioning element may be formed as a closed ring around the positioning element.
  • the spacer forms at least two, at least three or at least four support points adjacent to the associated positioning element for the receptacle.
  • the positioning element is higher than spacers, for example, at least twice as high.
  • the spacer is dimensioned such that the resting receptacle can at least partially still be rotated about the longitudinal axis. This loose resting allows easier removal of the receptacle or the rack with a variety of receptacles (Tubes).
  • a further preferred embodiment of the sampling device has a hood for covering at least the cutting device together with seedlings.
  • the hood serves to protect the receptacles and to prevent contamination, but should still allow venting.
  • the hood has a hood roof, a side wall extending from the hood roof and a hood edge delimiting the side wall, the hood rim is designed to rest on the footboard.
  • the foot part and the hood form a housing for the sampling device as a whole and include the cutting device, the germ carrier and the receiving containers.
  • the hood sits on the foot part, or is clamped on this. In this way it is also possible to carry the sampling device by means of the hood.
  • the hood roof on the inside of a mounting aid, which ensures a correct exposure of the hood.
  • Such an assembly aid can be formed, for example, as a protruding pin on the inner hood roof, with correct placement of the hood, the bolt engages in a recess provided for this purpose on the underside of the receptacle (eg the tube rack).
  • the hood roof is preferably designed such that a foot part of a further sampling device, with the features of a sampling device of one of the above-described preferred embodiments of a sampling device according to the first aspect of the invention, can be stacked thereon. In this way, multiple sampling devices can be stacked on top of each other, which reduces the overall space requirement.
  • the hood has support legs that allow the hood with the hood edge up and the hood roof down and / or the foot of the other stacked sampling device according to a preferred embodiment of the sampling device according to the first aspect of the invention described above.
  • the feet thus serve on the one hand to put the hood with the hood roof down, especially when the sampling device has already been rotated by 180 ° to align the receptacle with their openings upwards, so that the separated rung or sprouts in the receptacles to lie come.
  • the hood serves in this case as a container for storing the receptacle.
  • the support feet serve to set up a further sampling device on top of the hood when the hood is aligned with the hood roof upwards. The support feet then space the upper patch sampler and thus allow for better aeration of the seedlings in the lower sampling device.
  • the hood has ventilation slots and / or ventilation holes to provide adequate ventilation. This also prevents fungal attack.
  • the sampling device further comprises a mounting auxiliary device which prevents a side-reversed mounting of at least the cutting device to the foot part.
  • a mounting auxiliary device which prevents a side-reversed mounting of at least the cutting device to the foot part.
  • the assembly aid also prevents a Reversed mounting of the germ carrier, the receptacle and / or the hood to the foot part or to the cutting device.
  • the auxiliary assembly device thus preferably serves to prevent side-reversed mounting of individual elements to one another. In this way, contamination can be largely prevented.
  • the object mentioned at the outset is achieved by a method for growing and sampling seedlings with a sampling device according to one of the previously described preferred embodiments of a sampling device according to the first aspect of the invention, comprising the steps of: providing or growing seedlings, preferably from seeds; wait until the seedlings or sampling part of the seedlings (sprouts or sprouts) extend through the first and second plurality of passages due to progressive growth in length; Inserting a cutting edge between the cutting board base and the cutting board top for severing the seedlings or shifting the cutting board top relative to the cutting board base to sever the seedlings; Picking up separated sprouts or sprouts of the seedlings in a respective receptacle; and remove the receptacle from the sampling device.
  • the sampling device according to the first aspect of the invention and the method according to the second aspect of the invention have the same and similar sub-aspects as set forth in particular in the dependent claims. In this respect, reference is
  • the seedlings In the step of waiting for the seedlings to extend through the first and second plurality of passages, it is not mandatory for the seedlings to extend through each of the passages of the first and second plurality of passages.
  • a certain smaller number of seedlings may be provided so that not every well of the germ carrier is provided with a seedling and thus not through each passage of the first and second plurality of passages extending through a seedling.
  • more than one seed is present in at least one well of the germ carrier, however, the corresponding passage of the first and second plurality of passages is dimensioned such that only one seedling can grow through. Thus, failures during germination can be compensated.
  • the method further comprises the step of: watering the germ carrier for supplying the seeds or seedlings with water.
  • the method further comprises the step of: inverting the sampler 180 ° about an axis perpendicular to the longitudinal extent of the receptacles so that the receptacles are aligned with their openings facing upwards. This step is preferably after Inserting the cutting edge and performed before pulling out the cutting edge or after moving the cutting board upper part relative to the cutting board base for dicing the seedlings.
  • the method is automated or semi-automated. So it is for example preferred that seeds are introduced by means of an automated sowing device in corresponding wells of the germ carrier. It is also preferred that the insertion of the cutting edge as well as the reversal of the sampling device take place automatically. It can be provided that individual sampling devices are transported on a conveyor belt and then inserted by means of an automated device, a cutting edge, then the sampling device is rotated and the receptacle, which are preferably designed as tubes in a tube rack removed. Typically, such tubes of a tube rack are provided with bar codes or QR codes that identify the corresponding sample. It can be provided that these barcodes or QR codes are read out automatically.
  • the separated shoots or sprouts are further processed and subjected, for example, a DNA analysis.
  • the transport of the receptacle to the site of the subsequent DNA analysis can be automated, especially using the barcodes or QR codes on the tubes or the tube racks done.
  • the object mentioned at the outset is achieved by using a sampling device according to one of the above-described preferred embodiments of a sampling device according to the first aspect of the invention for growing seedlings preferably of a plant selected from the genera: Hordeum, Sorghum, Saccharum, Zea, Setaria, Oryza, Triticum, Secale, Triticale, Malus, Brachypodium, Aegilops, Daucus, Beta, Eucalyptus, Nicotiana, Solanum, Coffea, Vitis, Erythrante, Genlisea, Cucumis, Marus, Arabidopsis, Crucihimalaya, Cardamine, Lepidium, Capsella, Olmarabidopsis, Arabis, Brassica, Eruca, Raphanus, Citrus, Jatropha, Populus, Medicago, Cicer, Cajanus, Phaseolus, Glycine, Gossypium, Astragalus, Lotus, Torenia, Allium, and
  • a sampling device 1 according to the present invention has a foot part 2 and a cutting device 4.
  • the cutting device 4 has in this embodiment, a cutting board base 6 with a first plurality of passages 8.
  • a cutting board upper part 10 is arranged, which has a second plurality of passages 12.
  • the cutting device 4 further has a cutting edge 14, which is formed in this embodiment as a knife 15.
  • the cutting edge 14 can be inserted between the cutting board lower part 6 and the cutting board upper part 10.
  • Upper side of the cutting board upper part 10 is provided a plurality of positioning elements 16, which are formed in this embodiment as a substantially cylindrical collar 17.
  • the positioning elements 16 are provided for receiving containers 20 record and so to position against the cutter 4.
  • the individual elements are stacked or stacked together and form a unit in the assembled state, which is closed by the foot part 2 and the hood 24.
  • This structure is well based on FIG. 2 recognize.
  • Out FIG. 2 can be seen that the individual elements are directly stacked or stacked and covered with the hood 24.
  • the hood 24 is optional and not necessarily required for the sampling device 1.
  • the foot part 2 has a substantially rectangular basic configuration with a central also substantially rectangular recess 26. Further, the foot part 2 has a partially circumferential edge 28. Two interventions 29, 30 are provided on the edge 28, over which a user can remove individual elements of the sampling device 1 from the foot part 2. Between the edge 28 and the recess 26, a support surface 32 is provided, on which in particular the germ carrier 22 can rest.
  • the foot part 2 also has four slightly obliquely arranged side walls 34a, 34b, 34c, 34d, which are angled so that a foot part 2 on support legs 36 of the hood 24 (described in more detail below) can be placed.
  • the edge 28 has two flats 38a, 38b, which act as an assembly aid 40. These will also be described in detail in connection with the other components.
  • the foot part 2 is preferably made of a waterproof material, in particular plastic. It may preferably be designed as an injection-molded component.
  • the germ carrier 22 On the foot part 2, the germ carrier 22 (see. Figure 4a, 4b ) arranged.
  • the germ carrier 22 has a plate-shaped main body 42 with a circumferential flat edge 43. With the flat edge 43 of the germ carrier 22 rests on the support surface 32 of the foot part 2. As in FIG. 4 can recognize, the edge 43 also has two flats 44a, 44b, which correspond to the flats 38a, 38b of the foot part 2.
  • the other corners 45a, 45b of the rim 43 are formed rectangular and not flattened, so that they can not be arranged at the end of the foot part 2, on which the flattening 38a, 38b are provided. A reversed mounting of the germ carrier 22 to the foot part 2 is thus prevented.
  • the germ carrier 22 can only in the orientation that in FIG. 4a is shown with the foot part 2 in the orientation, in FIG. 3 shown is to be joined.
  • the germ carrier 22 has a plurality of recesses 46, which are arranged here in 96-well format. That is, the depressions 46 correspond to the usual 96-well laboratory format and are compatible with it.
  • the recesses 46 are formed to receive a seed and / or seedling 100 (see FIG. Fig. 8 ) be able to record.
  • the depth of the recesses 46 corresponds to the recess 26 of the foot part 2, so that the germ carrier 22 can be easily inserted into the foot part 2 (cf. Fig. 2 ).
  • the germ carrier 22 has a substantially uniform thickness d and is preferably pressed from a waste paper material. Also, another pulp material may be used, with wastepaper being particularly preferred for environmental reasons.
  • the thickness d of the seed carrier 22 is 1.2 mm.
  • the germ carrier 22 has a volume of 42.66 cm 3 (unpressed), a density of 0.36 g / cm 3 and a maximum absorbency of 45.36 ml of water. Before using the germ carrier 22, this is pressed at 180 ° C to obtain a uniform surface. As a result, the thickness d, which is originally 1.5 mm (Vol. 42.66 cm 3 ) is reduced to 1.2 mm. It has been found that this volume and absorbency is sufficient to provide seedlings 100 of the genus Beta, especially the species Beta vulgaris, about one week with sufficient liquid.
  • the recesses 46 are formed so that the seedlings 100 can only grow upwards.
  • the recesses 46 are not connected to each other, but completely separated.
  • the cutting board base 6 On the germ carrier 22, the cutting board base 6 is located.
  • the cutting board lower part 6 has a substantially flat lower side 47 (cf. FIG. 5c ), which rests directly on the germ carrier 22. Since the germ carrier 22 is supported on its underside in the recess 26 of the foot part 2, this can, even if it is watered, do not bend down and thus lose its contact between cutting board base 6 and germ carrier 22.
  • the cutting board base 6 has a first plurality of passages 8, of which in the FIGS. 5a . 5b and 5c only one is provided with reference numerals.
  • the passages 8 of the first plurality of passages are substantially aligned with central axes of the depressions 46, so that each passage 46 is associated with a passage 8. Since the cutting board base 6 rests directly on the germ carrier 22, seedlings 100 can grow out of the depressions 46 only through the passages 8.
  • the passages 8 are further formed so as to taper away from the germ carrier 22. They thus have an approximately frusto-conical cross-section (see. Fig.
  • the clear width w is chosen so that pericarp of the seedling 100 is stripped off. Perikarp has only maternal DNA and would falsify subsequent DNA analysis. That's why it's important that pericarp is removed before analysis. This can also be done manually before an analysis. In the context of the present embodiment, however, the pericarp is stripped off by the clear width w being limited to a value between 1 mm and 6 mm. In the present embodiment, the clear width w is about 3 mm, as a width of about 3 mm has proved to be useful for seedlings of the genus Beta sp., In particular the species Beta vulgaris .
  • a guide 48 for guiding the cutting edge 14 is further arranged on the cutting board lower part 6, a guide 48 for guiding the cutting edge 14 is further arranged.
  • the guide 48 comprises a plurality of claw-shaped projections 50, of which in FIG. 5a . 5b and 5c each one provided with reference numerals.
  • a stop 52 is further provided, which serves to limit the movement path of the cutting edge 14.
  • the claw-shaped projections 50 serve on the one hand for guiding the cutting edge 14 in the plane, ie parallel to the cutting board base 6, but also prevent an axial lifting of the cutting edge 14 during the cutting process. This is particularly advantageous when the seedlings 100 have a certain strength and cutting must be performed with a certain force.
  • the cutting board base 6 has flats 53 a, 53 b, which correspond to the flats 38 a, 38 b of the foot part 2.
  • the edge 28 of the foot part 2 has a height such that the cutting board base 6 is surrounded by the edge 28 in the inserted state (see. Fig. 2 ).
  • a slipping of cutting board base 6 to germ carrier 22 can be avoided, whereby contamination can be prevented.
  • the cutting edge 14 itself is best in the FIGS. 1a and 1b to see. It is designed as a knife 15 and has a substantially flat base body 54.
  • the base body 54 may be formed, for example, as a metal sheet and have such a dimension that it covers all of the passages 8 of the first plurality of passages in the retracted state.
  • the main body 54 has a handle 56, which in this embodiment (FIG. Fig. 1a . 1b ) is designed only as an angled projection. It may also be provided that a separate plastic handle is provided at this location, for example.
  • the gap S in this embodiment has a width of at least 0.7 mm, and serves to allow the cutting edge 14 to be inserted.
  • the gap S can also have a larger width than 0.7 mm, but should not be too large that an ingrowth of a seedling 100 from a recess 46 is prevented in a laterally adjacent receptacle 20.
  • the passages 12 of the second plurality of passages of the cutting board top 10 are in turn aligned with the passages 8 of the first plurality of passages of the cutting board base 6. In this respect, these are cursing as in FIG. 2 shown with the recesses 46 of the germ carrier 22.
  • a positioning element 16 in the form of a collar 17 is arranged in each case.
  • spacers 60 are arranged (in Fig. 6 only one provided with reference numerals) to space the receptacles 20.
  • the collar 17 are slightly tapered and extend in the assembled state into the interior of the respective receptacle 20 in (see. Fig. 2 ). Due to the axial overlap of the collar 17 and receptacle 20, a lateral coalescence of seedlings 100 from a recess 46 into a laterally laterally offset receptacle 20 is prevented.
  • two flats 61 a, 61 b are provided, which do not interact with the flats 38 a, 38 b of the foot part 2. Rather, the flats 61a, 61b cooperate with the hood 24, as will be described below.
  • the receptacles 20 are in this embodiment part of a tube rack 62 and are held by the rack 62.
  • the receptacle 20 are therefore designed as tubes or laboratory tubes.
  • the entire tube rack 62 thus sits on the cutting board top 10, with each laboratory tube extending over a projection 16.
  • the seedlings 100 can thus grow directly through the cutting board top 10 in the corresponding tubes.
  • the hood 24 (see. Fig. 7a, 7b ) has a hood roof 70, and a side wall 72 extending therefrom, which ends in a hood edge 74.
  • the side wall 72 has flats 75a, 75b which cooperate with the flats 61a, 61b of the cutting board top 10. As a result, a side-reversed placement of the hood 24 is prevented.
  • the hood 24 has support legs 76 which are provided at all four corners and two in the central region.
  • the support legs 76 serve on the one hand to set up the hood 24 with the hood roof 70 down.
  • the support legs 76 also serve to receive a foot part 2 of a further sampling device 1 in order to stack them on one another (cf. Fig. 9 ).
  • a positive retention of the foot part 2 of the further sampling device 1 stacked on the hood 24 is achieved by the support feet 76.
  • the support legs 76 also space the foot part 2 in the vertical direction of the hood roof 70, so that aeration of seedlings 100 inside the hood 24 is possible.
  • hood 24 in the hood roof 70 ventilation holes 78 (in Figure 7a, 7b only one each provided with reference numerals), and both at the transition between Hood roof 70 and side wall 72 ventilation slots 80 as well as directly into the side wall 72 introduced ventilation slots 82nd
  • FIG. 8a will now be described the cutting processes.
  • the hood 24 In order to sever the seedlings 100, the hood 24 must first be removed, so that the slot S between the cutting board base 6 and the cutting board top 10 is accessible. Subsequently, it is possible to rotate the sampling device 1 by 180 °, so that the receptacle 20 with its openings facing up and the seedlings 100 are upside down. This is not mandatory, but ensures that the seedlings 100 fall directly into the corresponding receptacle 20 after dicing. In this way, the cutting process that is in FIG. 8a is shown performed. However, it should be understood that it is also possible to carry out the cutting process when the sampling device 1 is set up with the foot part 2 on a floor.
  • the cutting edge 14 is inserted into the gap S, as indicated by the arrow 84 (see. Fig. 8a ) indicated.
  • the cutting edge 14 has a cutting edge 14a which progressively feeds the individual seedlings 100 (in FIG Fig. 8a only two shown as an example).
  • the cutting edge 14 separates the seedlings 100 at the shoot 102 so that the root 104 remains in the corresponding recess 46 of the germ carrier 22.
  • the cutting edge 14 covers with its main body 54 the individual passages 8 of the first plurality of passages and the passages 12 of the second plurality of passages, so that no root material from the root 104 through the passages 8, 12 can fall into the receptacle 20.
  • FIG. 8b now shows a second embodiment in which no cutting edge 14 is inserted to sever the seedlings 100, but the cutting board base 6 and the cutting board top 10 are shifted from each other, so as to sever the respective seedlings 100.
  • a gap S is not necessarily formed in this embodiment (cf. Fig. 8a ). Rather, it is possible that the cutting board top 10 rests with its lower surface 110 on an upper surface 112 of the cutting board base 6.
  • the cutting board top 10 has laterally a first and a second rail 114, 116 (see. Fig. 6 ), with the guide 48 on the cutting board base 6 can interact.
  • the cutting board upper part 10 can thus be guided on the cutting board base 6 and moved relative to this, wherein a lifting is prevented.
  • the stop 52 also serves as a stop for the cutting board upper part 10. When this rests against the stop 52, the passages 8 are aligned with the passages 12.
  • the passages 8 of the first plurality of passages are slightly conical or frustoconical in shape (see above) and have at their narrowest point an edge 120, which in this embodiment is preferably designed as a cutting edge 121. This does not need to be strengthened separately, with a relatively small radius at the edge is preferred. If the cutting board upper part 10 and the cutting board lower part 6 are then displaced relative to one another while a seedling 100 extends through the passages 8, 12, the seedling 100 is severed in the region of the shoot 102. The cutting board top 10 and the cutting board base 6 act together as scissors.
  • the clear width w (cf. Fig. 2 ) of the passages 8 of the first plurality of passages is in this embodiment ( Fig. 8b ) smaller than a diameter B (see. Fig. 2 ) a web 122 between the passages 12 of the second plurality of passages.
  • a diameter B see. Fig. 2
  • the sampling device 1 has a further stop or an indicator for the displaced (as in Fig. 8b shown) position of the cutting board top 10 and cutting board base 6 to each other.
  • This further stop or indicator may be formed on the cutting board upper part 10, the cutting board lower part 6, or another component, for example the foot part 2. It is not necessary that this further stop completely prevents a further pushing, but it is sufficient if an indication is given to an operator that the shifted position has been reached.
  • the further stop can therefore also be designed as a slight depression or small projection, which gives the operator a tactile feedback.
  • an indicator may each include a colored mark applied to a side portion of the cutting board upper 10 and the cutting board base 6 by sliding in unison with each other be brought so that an operator can visually perceive the achievement of the correct position.
  • a separating element (not shown in the figures) between the cutting board upper part 10 and the cutting board lower part 6 in order to securely close the passages 8.
  • a separating element may in its configuration essentially correspond to the cutting edge 14 or the blade 15, wherein it may be formed of a softer material, such as a thin plastic, since it does not have to absorb cutting reaction forces.
  • FIG. 9 shows an arrangement of a plurality of sampling devices 1 according to the present disclosure.
  • a total of 27 sampling devices 1 are shown, wherein in each case three sampling devices 1 are stacked on each other.
  • each sampling devices 1 stands with its foot part 2 on the hood 24 of a sampling device 1 below. In this way, seedlings 100 can be tested in a space-saving manner.

Landscapes

  • Life Sciences & Earth Sciences (AREA)
  • Environmental Sciences (AREA)
  • Soil Sciences (AREA)
  • Biodiversity & Conservation Biology (AREA)
  • Botany (AREA)
  • Ecology (AREA)
  • Forests & Forestry (AREA)
  • Health & Medical Sciences (AREA)
  • Physiology (AREA)
  • Apparatus Associated With Microorganisms And Enzymes (AREA)
  • Cultivation Receptacles Or Flower-Pots, Or Pots For Seedlings (AREA)
  • Pretreatment Of Seeds And Plants (AREA)
EP18159836.8A 2018-03-02 2018-03-02 Dispositif d'échantillonnage pour cultiver et échantillonner des plantules de plantes Withdrawn EP3533308A1 (fr)

Priority Applications (3)

Application Number Priority Date Filing Date Title
EP18159836.8A EP3533308A1 (fr) 2018-03-02 2018-03-02 Dispositif d'échantillonnage pour cultiver et échantillonner des plantules de plantes
DK19160405.7T DK3533309T3 (da) 2018-03-02 2019-03-01 Prøvetagningsanordning til tiltrækning og prøvetagning af kimplanter.
EP19160405.7A EP3533309B1 (fr) 2018-03-02 2019-03-01 Dispositif d'échantillonnage pour cultiver et échantillonner des plantules de plantes

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
EP18159836.8A EP3533308A1 (fr) 2018-03-02 2018-03-02 Dispositif d'échantillonnage pour cultiver et échantillonner des plantules de plantes

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EP19160405.7A Active EP3533309B1 (fr) 2018-03-02 2019-03-01 Dispositif d'échantillonnage pour cultiver et échantillonner des plantules de plantes

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111066413A (zh) * 2019-12-11 2020-04-28 陈强 一种农业种植用的浸种催芽机

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US4037360A (en) * 1974-12-30 1977-07-26 Farnsworth Robert S Raft apparatus for growing plants by means of water culture
US5636474A (en) * 1996-05-13 1997-06-10 Li-Tai Peng Hydroponic means for culturing edible sprouts
US20070144068A1 (en) * 2005-12-28 2007-06-28 Chin-Hsing Feng Sprouts and baby leaf crops farming device
WO2012096568A1 (fr) 2010-12-28 2012-07-19 Keygene N.V. Procédé et dispositif de prélèvement d'échantillons de plantes
DE102013100261A1 (de) 2012-01-13 2013-07-18 Kevin R. Oldenburg Systeme und Verfahren zum Ernten und/oder Analysieren biologischer Proben
EP3289856A1 (fr) * 2016-09-05 2018-03-07 Deutsche Saatveredelung AG Dispositif de culture et de prélèvement d'échantillon pour plantes

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AU525073B2 (en) 1979-05-22 1982-10-21 P. Robinson + Sons (Wairarapa) Ltd. Seed sowing device
FR2825467B1 (fr) 2001-05-31 2003-10-17 Ragt Genetique Sa Dispositif pour prelever de facon aleatoire et deposer sur substrat des echantillons de semences en vue d'analyser leur faculte germinative
US7735626B2 (en) 2006-11-13 2010-06-15 Pioneer Hi-Bred International, Inc. Apparatus, method and system for handling, positioning, and/or automatically orienting objects
JP4825645B2 (ja) 2006-11-15 2011-11-30 本田技研工業株式会社 Dnaの抽出方法
CA2708812C (fr) 2007-12-17 2015-07-07 Pioneer Hi-Bred International, Inc. Appareil, procede et systeme de creation, de traitement, de collecte et d'indexage de semence et de parties de semence d'une semence de plante
KR101208605B1 (ko) 2010-04-22 2012-12-10 한국식품연구원 소비자 유통용 새싹 재배기

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4037360A (en) * 1974-12-30 1977-07-26 Farnsworth Robert S Raft apparatus for growing plants by means of water culture
US5636474A (en) * 1996-05-13 1997-06-10 Li-Tai Peng Hydroponic means for culturing edible sprouts
US20070144068A1 (en) * 2005-12-28 2007-06-28 Chin-Hsing Feng Sprouts and baby leaf crops farming device
WO2012096568A1 (fr) 2010-12-28 2012-07-19 Keygene N.V. Procédé et dispositif de prélèvement d'échantillons de plantes
DE102013100261A1 (de) 2012-01-13 2013-07-18 Kevin R. Oldenburg Systeme und Verfahren zum Ernten und/oder Analysieren biologischer Proben
EP3289856A1 (fr) * 2016-09-05 2018-03-07 Deutsche Saatveredelung AG Dispositif de culture et de prélèvement d'échantillon pour plantes

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111066413A (zh) * 2019-12-11 2020-04-28 陈强 一种农业种植用的浸种催芽机

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EP3533309B1 (fr) 2021-04-07
EP3533309A2 (fr) 2019-09-04
EP3533309A3 (fr) 2020-01-08
DK3533309T3 (da) 2021-05-17

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